捕鼠器用鼠盒出料通道
By designing an inclined discharge channel and discharge transport mechanism for the mouse trap, combined with motor drive and secondary detection sensors, the problem of continuous capture of live mice by the mousetrap was solved, improving capture efficiency and reducing the false capture rate.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HENAN TIANZHUO TECHNOLOGY CO LTD
- Filing Date
- 2025-08-20
- Publication Date
- 2026-07-17
Smart Images

Figure CN224504494U_ABST
Abstract
Claims
1. A discharge channel for a mousetrap box, characterized in that: The system includes a mouse box discharge channel (150), which is inclined, with the end near the mouse trap working chamber (110) being the lower end and the end near the mouse box discharge port (120) being the higher end; the bottom of the mouse box discharge channel (150) is provided with a discharge transport mechanism (300), the discharge transport mechanism (300) includes a first track (330), the first track (330) is provided with a slider (320) that can slide along it, the slider (320) is connected to a discharge driving power component, the discharge driving power component provides power for the slider (320) to slide on the first track (330), the slider (320) is provided with a constraint mechanism, when the mouse box is discharging, the constraint mechanism can fix the mouse box (800) as a whole.
2. A mouse box outfeed passage for a mousetrap as defined in claim 1, wherein: The tilt angle of the mouse box discharge channel (150) is greater than that of the bracket (111).
3. The mouse trap mouse cage discharge passage according to claim 1, wherein: The mouse box lid storage compartment (140) is perpendicular to the mouse box discharge channel (150).
4. The mouse trap mouse cage discharge passage according to claim 1, wherein: The constraint mechanism includes three levels: a first-level constraint mechanism (321), a second-level constraint mechanism (322), and a third-level constraint mechanism (323). The first-level constraint mechanism (321) is hook-shaped. The second-level constraint mechanism (322) and the third-level constraint mechanism (323) both include two rotating push rods (327). The rotating push rods (327) are rotatably connected to the slider (320). The slider (320) has two sets of return springs (326) for resetting the rotating push rods (327). The far end face of the rotating push rod (327) is the pushing surface (325), and the outer side of the rotating push rod (327) is the rotating pressing surface (324). The rotating push rods (327) of the second-level constraint mechanism (322) and the third-level constraint mechanism (323) are both engaged with a discharge temporary blocking component (360). When the slider (320) moves backward, the discharge temporary blocking component (360) keeps the mouse box (800) in place.
5. A mouse box ejection passage for a mousetrap according to claim 4, characterized in that: One of the discharge temporary blocking components (360) includes a discharge mounting part (361) and a discharge blocking part (362). The discharge blocking part (362) is a plate material that gradually extends along the Y-axis and also gradually deviates in the X-axis direction.
6. A mouse box ejection passage for a mousetrap according to claim 5, characterized in that: The pushing surface (325) of the rotating push rod (327) of the three-level constraint mechanism (323) can extend out from the discharge port (120) of the mouse box.
7. The discharge channel of the mouse trap box as described in claim 6, characterized in that: The first track (330) consists of two sections, distributed on both sides of the slider (320); The discharge drive power component is a first motor. The output shaft of the first motor is connected to the first screw (310). The first screw (310) is rotatably connected to the rotating support plate (190). The first screw (310) is threadedly connected to the slider (320). The mouse box discharge channel (150) is equipped with a secondary detection sensor (155), which is an infrared beam sensor.